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    青海共和盆地中低温地热流体发电

    王敏黛 郭清海 严维德 刘明亮 曹耀武 李洁祥 石维栋 尚小刚 马月花

    王敏黛, 郭清海, 严维德, 刘明亮, 曹耀武, 李洁祥, 石维栋, 尚小刚, 马月花, 2014. 青海共和盆地中低温地热流体发电. 地球科学, 39(9): 1317-1322. doi: 10.3799/dqkx.2014.113
    引用本文: 王敏黛, 郭清海, 严维德, 刘明亮, 曹耀武, 李洁祥, 石维栋, 尚小刚, 马月花, 2014. 青海共和盆地中低温地热流体发电. 地球科学, 39(9): 1317-1322. doi: 10.3799/dqkx.2014.113
    Wang Mindai, Guo Qinghai, Yan Weide, Liu Mingliang, Cao Yaowu, Li Jiexiang, Shi Weidong, Shang Xiaogang, Ma Yuehua, 2014. Medium-Low-Enthalpy Geothermal Power-Electricity Generation at Gonghe Basin, Qinghai Province. Earth Science, 39(9): 1317-1322. doi: 10.3799/dqkx.2014.113
    Citation: Wang Mindai, Guo Qinghai, Yan Weide, Liu Mingliang, Cao Yaowu, Li Jiexiang, Shi Weidong, Shang Xiaogang, Ma Yuehua, 2014. Medium-Low-Enthalpy Geothermal Power-Electricity Generation at Gonghe Basin, Qinghai Province. Earth Science, 39(9): 1317-1322. doi: 10.3799/dqkx.2014.113

    青海共和盆地中低温地热流体发电

    doi: 10.3799/dqkx.2014.113
    基金项目: 

    青海省科技计划项目 2013-G-Q08A

    详细信息
      作者简介:

      王敏黛(1990-), 女, 硕士研究生在读, 从事高温地热领域的研究工作.E-mail: mindaiwang@163.com

      通讯作者:

      郭清海, E-mail: qhguo2006@gmail.com

    • 中图分类号: P314

    Medium-Low-Enthalpy Geothermal Power-Electricity Generation at Gonghe Basin, Qinghai Province

    • 摘要: 青海省是我国地热资源相对丰富的地区, 但其主要地热能开发利用方式长期以来为效率较低的直接利用.以青海东北部地热异常明显的共和盆地为典型研究区, 依据前期地热地质调查和地球物理工作成果, 在盆地北部施工了终孔深度为1 852 m的DR2井, 获取了温度达84.2 ℃的地热流体.在此基础上, 建立了青海省首个试验地热发电站, 设计年平均净发电量为114 kW.与利用高温地热流体发电的西藏羊八井地热电站不同, 青海共和试验地热电站是青藏高原利用中低温地热流体发电的典范, 有望为青海省能源结构优化做出开拓性贡献.总体来看, 共和盆地地热流体温度较高、水量丰富、具有较大的发电潜力, 但在开发利用过程中也应注意结垢问题.

       

    • 图  1  共和地质简图及DR2井位(据薛建球等, 2013)

      Fig.  1.  Simplified geological map of Gonghe Basin and location of Well DR2

      图  2  DR2井地温(a)和地温梯度(b)随深度变化曲线

      Fig.  2.  Plots of well temperature (a) and geothermal gradient (b) versus depth for Well DR2

      图  3  螺杆膨胀机发电流程

      Fig.  3.  A flow chart showing the process of electricity generation by screw expander

      表  1  DR2生产井地热水的化学组成

      Table  1.   Chemical composition of geothermal water sample from Well DR2

      分析项目(μg/L) 分析项目(μg/L) 分析项目(μg/L) 分析项目(μg/L)
      Al3+ nd. F- 3.56 Ag 0.453 Li 9 060
      As 0.621 HCO3- 604 Au 0.154 Rb 122
      B 26.4 CO32- 2.42 Ba 0.066 Cs 686
      Ca2+ 45.7 Cl- 678 Be nd. Sb 12.81
      K+ 12.1 NO3- nd. Cd 0.003
      Mg2+ 1.82 SO42- 135.6 Co nd.
      Na+ 576.5 Cr nd.
      Sr 1.46 Cu nd.
      Zn2+ 0.04 Ni 0.011 Fe(总) nd.
      NH4+ 0.59 Pb 0.044 Hg nd.
      Fe2+ 0.02 Se 0.012 Sn 0.12
      SiO2 58.2 Mn nd. V 0.11
      CO2 15.4
      H2S nd.
      注: pH为7.69;温度为84.2 ℃.
      下载: 导出CSV

      表  2  20~90 ℃范围内DR2井地热水对方解石的饱和指数

      Table  2.   Saturation indices of the geothermal water extracted from DR2 with respect to calcite over a temperature range of 20-90 ℃

      温度(℃) 20 30 40 50 60 70 80 90
      饱和指数 0.736 0.787 0.851 0.929 1.008 1.093 1.183 1.276
      下载: 导出CSV
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    • 收稿日期:  2014-04-12
    • 刊出日期:  2014-09-01

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